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A new simpler way to obtain high fusion power gain in tandem mirrors

机译:一种新的更简单的方法来获得串联镜子的高融合功率增益

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From the earliest days of fusion research, Richard F. Post and other advocates of magnetic mirror confinement recognized that mirrors favor high ion temperatures where nuclear reaction rates 〈σν〉 begin to peak for all fusion fuels. In this paper we review why high ion temperatures are favored, using Post's axisymmetric Kinetically Stabilized Tandem Mirror as the example; and we offer a new idea that appears to greatly improve reactor prospects at high ion temperatures. The idea is, first, to take advantage of recent advances in superconducting magnet technology to minimize the size and cost of End Plugs; and secondly, to utilize parallel advances in gyrotrons that would enable intense electron cyclotron heating (ECH) in these high field End Plugs. The yin-yang magnets and thermal barriers that complicated earlier tandem mirror designs are not required. We find that, concerning end losses, intense ECH in symmetric End Plugs could increase the fusion power gain Q, for both DT and Catalyzed DD fuel cycles, to levels competitive with steady-state tokamaks burning DT fuel. Radial losses remain an issue that will ultimately determine reactor viability.
机译:从最早的融合研究中,Richard F.磁镜监禁的职位和其他倡导者认识到,反射镜有利于核反应速率<σν>为所有融合燃料开始峰值的高离子温度。在本文中,我们审查了为什么使用Post的轴对称动力学动态稳定的串联镜像作为示例的柱子对称的原因优惠。我们提供了一个新的想法,似乎大大提高了高离子温度的反应堆前景。首先,该想法是利用超导磁体技术最近的进步,以最小化端塞的尺寸和成本;其次,利用在这些高场端塞中能够使强烈的电子回旋加热(ECH)能够实现的陀螺仪的平行进展。不需要尹阳磁铁和复杂串联镜面设计复杂的热障碍。我们发现,关于最终损失,对称端插头中的强烈ex可以增加融合功率增益Q,用于DT和催化的DD燃料循环,与稳态Tokamaks燃烧DT燃料的稳定性竞争。径向损失仍然是最终确定反应堆活力的问题。

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